Energy-Efficient and Scalable Joule Heating Synthesis of Self-Standing Transition Metal Phosphide Electrodes for Full Water Splitting

Autor/a

Abisdris, Liel

Naeem, Muhammad Saad

Bianchini, Marco

Herraiz-Cardona, Isaac

Tzadikov, Jonathan

Azoulay, Adi

Geva, Rotem

Volokh, Michael

Baraban, Joshua H.

López, Núria

Shalom, Menny

Fecha de publicación

2025-07-22



Resumen

Transition metal phosphides (TMPs) show promise as low-cost (pre)electrocatalysts for water splitting and other energy-related applications. However, their traditional synthesis methods face challenges in energy consumption, stability, and reproducibility due to the reaction at high temperatures. Here, the Joule heating (JH) method for the scalable synthesis of TMPs (Ni, Cu, and In) as self-standing electrodes and powders is presented. The JH synthesis demonstrates substantial economic efficiency and significantly reduces energy consumption and environmental impacts while enhancing reproducibility due to fast processing times. Large-scale nickel phosphide-based electrodes are synthesized with various transition metal dopants and assembled into an anion exchange membrane water electrolyzer as anode and cathode, maintaining a cell potential of a maximum of 1.8 V at 200 mA cm⁻2 under 55 °C for 7 days. These results highlight the JH synthesis as a promising approach for the scalable production of high-performance self-standing electrodes for energy-related devices.

Tipo de documento

Artículo

Versión del documento

Versión publicada

Lengua

Inglés

Materias CDU

54 - Química

Palabras clave

Química

Páginas

12 p.

Publicado por

Wiley

Número del acuerdo de la subvención

European Innovation Council (EIC) via OHPERA project (grant agreement 101071010)

L.A. thanks the Kreitman School of Advanced Graduate Studies for the Negev-Tsin scholarship and the Israel Ministry of Education (the planning and budgeting committee (PBC)) for the Nechemia Lev-Zion scholarship

Ministerio de Ciencia e Innovación, with Ref. No. PID2021-122516OB-I00

Documentos

Advanced Energy Materials - 2025 - Abisdris - Energy‐Efficient and Scalable Joule Heating Synthesis of Self‐Standing.pdf

3.161Mb

 

Derechos

Attribution-NonCommercial 4.0 International

Attribution-NonCommercial 4.0 International

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